材料科学
弹性体
导电体
柔性电子器件
数码产品
聚合物
可伸缩电子设备
纳米技术
印刷电子产品
3D打印
紫外线
导电聚合物
基质(水族馆)
墨水池
光电子学
复合材料
电气工程
海洋学
地质学
工程类
作者
Xiangnan He,Jianxiang Cheng,Zhenqing Li,Haitao Ye,Xinfeng Wei,Honggeng Li,Rong Wang,Yuan‐Fang Zhang,Hui Ying Yang,Chuan Fei Guo,Qi Ge
标识
DOI:10.1021/acsami.2c18954
摘要
Ionic conductive elastomers (ICEs) are emerging stretchable and ionic conductive materials that are solvent-free and thus demonstrate excellent thermal stability. Three-dimensional (3D) printing that creates complex 3D structures in free forms is considered as an ideal approach to manufacture sophisticated ICE-based devices. However, the current technologies constrain 3D printed ICE structures in a single material, which greatly limits functionality and performance of ICE-based devices and machines. Here, we report a digital light processing (DLP)-based multimaterial 3D printing capability to seemly integrate ultraviolet-curable ICE (UV-ICE) with nonconductive materials to create ionic flexible electronic devices in 3D forms with enhanced performance. This unique capability allows us to readily manufacture various 3D flexible electronic devices. To demonstrate this, we printed UV-ICE circuits into polymer substrates with different mechanical properties to create resistive strain and force sensors; we printed flexible capacitive sensors with high sensitivity (2 kPa-1) and a wide range of measured pressures (from 5 Pa to 550 kPa) by creating a complex microstructure in the dielectric layer; we even realized ionic conductor-activated four-dimensional (4D) printing by printing a UV-ICE circuit into a shape memory polymer substrate. The proposed approach paves a new efficient way to realize multifunctional flexible devices and machines by bonding ICEs with other polymers in 3D forms.
科研通智能强力驱动
Strongly Powered by AbleSci AI